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Critical Role of Holes in Reliability, Robustness and Stability of GaN-on-Si HEMTs for Power and RF Applications
會議論文

Critical Role of Holes in Reliability, Robustness and Stability of GaN-on-Si HEMTs for Power and RF Applications

Roy King-Yuen Wong, Yeke Liu, Po-Yen Huang, Haoran Wang, Chun-Hao Lai, Chun Chuang, Xue-Han Chen, Chih-Kai Chang, Ming-Cheng LinShawn Shuo-Hung Hsu
IEEE International Reliability Physics Symposium proceedings, 頁碼.01-10
IEEE
2025 IEEE International Reliability Physics Symposium (IRPS) (Monterey, CA, USA, 30/03/2025–03/04/2025)
30/03/2025
Web of Science ID: WOS:001546466200134

摘要

Aluminum gallium nitride Current Collapse Dynamic On-resistance Dynamic Threshold Voltage Electron traps Electrostatic discharges ESD GaN HEMTs Hard Switching HEMTs Hole Logic gates MODFETs Power Switch Radio frequency RF Power Amplifier RF Substrate Loss Robustness Wide band gap semiconductors Stress
This study investigates the role of holes in the reliability, robustness, and stability of GaN-on-Si high-electron-mobility transistors (HEMTs) used in power switches and RF power amplifiers (PAs). Firstly, for reliability, the influence of holes on dynamic on-resistance (Ron) degradation under hard-switching stress is evaluated through over-voltage accelerated testing. The measured output capacitances ( C oss) before and after accelerated hard-switching stress reveal that holes and electrons trapping at the field plate regions. A p-GaN drain electrode facilitates hole injection into the device, enabling photon emission and the de-trapping of electron traps, thereby potentially mitigating hot carrier-induced damage. Secondly, for robustness, enhanced Human-Body-Model (HBM) electrostatic discharge (ESD) robustness in Schottky gate p-GaN enhancement mode (E-mode) HEMTs is achieved through gate epitaxial engineering with optimized AlGaN spacers. These devices maintain comparable DC performance while significantly improving HBM ESD forward gate-to-source capability from 300 V to 3.5 kV, meeting JEDEC JS-001-2023 Class 2 standards. At the high HBM voltage of 3.5 kV, the proposed mechanism explains the accumulation of holes at the p-GaN/AlGaN and AlGaN/GaN interfaces, which lowers barriers and improves electron conduction capabilities and uniformity under the gate, thereby alleviating current crowding. Finally, for stability, inserting an AlGaN back-barrier (BB) between the channel GaN (Ch-GaN) and carbon-doped GaN (C-GaN) in depletion-mode GaN-on-Si HEMTs for RF PAs, while maintaining the same channel-to-C-GaN distance, outperform conventional C-GaN designs. This scheme reduces current collapse from 6.49% to 4.75% and dynamic threshold voltage (Vth) from 0.4 V to < 0.2 V, and achieving higher/max from 76.62 GHz to 91.47 GHz. This improvement is attributed to the formation of a two-dimensional hole gas (2DHG) at the Ch-GaN/AlGaN BB interface, which compensates for trapped electrons and reduces parasitic capacitance.

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